Vehicle transmission gear locking mechanism
A vehicle transmission comprises a locking mechanism selectively preventing an at least one shift drum disposed on a shift drum shaft from rotating. The locking mechanism is movable between a first position and a second position. When in the first position, the locking mechanism prevents the at least one shift drum from rotating in the first direction to engage a first locked position. When in the second position, the locking mechanism prevents the at least one shift drum from rotating in the second direction to engage a second locked position. The second locked position is sequentially before the first locked position in the first direction.
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The present invention relates to vehicle transmission gear locking mechanisms.
BACKGROUNDVehicle transmissions typically have multiple shift positions. For a given speed of rotation of an input shaft of the transmission, each gear, when engaged, results in a different shift position which corresponds to a different speed of rotation and/or direction of rotation of an output shaft of the transmission. Typically, in transmissions for motorcycles or all-terrain vehicles, the shift positions need to be engaged sequentially. In one example of a vehicle transmission in a three-wheel vehicle, the gears engagement sequence is: reverse shift position, first forward shift position, a neutral shift position (i.e. no gears engaged), second forward shift position, and third forward shift position. The shift positions can also be engaged in the reverse sequence.
Some transmissions have a reverse gear lock. The reverse gear lock prevents from engaging the reverse shift position when driving forward. When the reverse gear lock is actuated, the driver is prevented from downshifting to the reverse gear when only downshift to the first gear is desired. The reverse gear lock is typically activated by default, and in order to engage the reverse gear, the driver usually has to press on a button on the handlebar (or in some cases move a pedal) to release the gear locking mechanism. When the gear locking mechanism is released, the driver can access the reverse shift position as well as all the other shift positions.
Moreover, when the neutral shift position is disposed sequentially between the first and the second shift positions, the driver may find it difficult to find the neutral shift position. No gears are engaged in the neutral shift position, and the driver may hardly feel the passage through the neutral shift position when downshifting or upshifting between the first and second shift positions.
Therefore, there is a need for a vehicle transmission which at least facilitates finding the neutral shift position, and prevents the reverse shift position from being engaged when driving forward.
SUMMARYExample embodiments of a vehicle gear locking mechanism according to the present invention ameliorate at least some of the inconveniences present in the prior art.
An example embodiment of a vehicle transmission has a gear locking mechanism that prevents at least one of the shift positions to be engaged when upshifting and at least one of the other shift positions to be engaged when downshifting.
Thus, as broadly embodied, a vehicle transmission comprises an input shaft. First, second and third input gears are disposed on the input shaft. A transmission shaft is disposed parallel to the input shaft. The input shaft is selectively driving the transmission shaft. First, second, and third transmission gears are disposed on the transmission shaft. The first transmission gear is engaging the first input gear. The second transmission gear is engaging the second input gear. The third transmission gear is engaging the third input gear. A shift drum shaft is disposed parallel to the transmission shaft. At least one shift drum is disposed on the shift drum shaft. The at least one shift drum is selectively operatively connected to the first, second, and third input gears and the first, second and third transmission gears. The at least one shift drum is rotatable: sequentially between a first position, a second position, a third position, and a fourth position in a first direction, and sequentially between the fourth position, the third position, the second position, and the first position in a second direction. When in the first position, the at least one shift drum operatively engages one of the first input gear and the first transmission gear such that the input shaft drives the transmission shaft via the first input gear and the first transmission gear. When in the second position, the at least one shift drum operatively engages one of: one of the second input gear and the second transmission gear such that the input shaft drives the transmission shaft via the second input gear and the second transmission gear, and none of the first, second, and third input gears, and the first, second and third transmission gears, such that the transmission shaft is not driven by the input shaft. When in the third position, the at least one shift drum operatively engages another one of the: one of the second input gear and the second transmission gear such that the input shaft drives the transmission shaft via the second input gear and the second transmission gear, and none of the first, second, and third input gears, and the first, second and third transmission gears, such that the transmission shaft is not driven by the input shaft. When in the fourth position, the at least one shift drum operatively engages the third input gear and the third transmission gear such that the input shaft drives the transmission shaft via the third input gear and the third transmission gear. A locking mechanism is selectively preventing the at least one shift drum from rotating. The locking mechanism is movable between a first position and a second position. When in the first position, the locking mechanism prevents the at least one shift drum from rotating in the first direction between a first unlocked position and a first locked position. The first unlocked position is sequentially prior to the first locked position in the first direction. When in the second position, the locking mechanism prevents the at least one shift drum from rotating in the second direction between a second unlocked position and a second locked position. The second unlocked position is sequentially prior to the second locked position in the second direction. The first locked position is one of the second, third and fourth positions. The second locked position is one of the first, second, and third positions. When the first locked position is the second position, the second locked position is the first position. When the first locked position is the third position, the second locked position is one of the first and second positions. When the first locked position is the fourth position, the second locked position is one of the first, second and third positions.
In an additional aspect, the first position corresponds to a reverse shift position and the at least one shift drum operatively engages one of the first input gear and the first transmission gear such that the first input gear drives the first transmission gear via an idler gear and such that the input shaft drives the transmission shaft via the first input gear, the first transmission gear and the idler gear. The second position corresponds to a first forward shift position and the at least one shift drum operatively engages one of the second input gear and the second transmission gear such that the input shaft drives the transmission shaft via the second input gear and the second transmission gear. The third position corresponds to a neutral shift position and the transmission shaft is not driven by the input shaft. The fourth position corresponds to a second forward shift position and the at least one shift drum operatively engages one of the fourth input gear and the fourth transmission gear such that the input shaft drives the transmission shaft via the fourth input gear and the fourth transmission gear.
In a further aspect, the locking mechanism comprises a drum rotatably disposed on the shift drum shaft, and a lever pivotable between a first and a second position. The lever selectively abuts the drum for preventing the drum to rotate. When the locking mechanism is the first position, the lever is in the first position and the lever abuts the drum. When the locking mechanism is the second position, the lever is in the second position and the lever abuts the drum.
In an additional aspect, the drum is integrally formed with the at least one shift drum.
In a further aspect, the lever has first and second abutment surfaces. The drum has corresponding first and second abutment surfaces. When the locking mechanism in the first position, the first abutment surface of the lever abuts against the corresponding first abutment surface of the drum when preventing the at least one shift drum from rotating in the first direction to engage the first locked position. When the locking mechanism in the second position, the second abutment surface of the lever abuts against the corresponding second abutment surface of the drum when preventing the at least one shift drum from rotating in the second direction to engage the second locked position.
In an additional aspect, the first abutment surface of the drum is an end of a first recess. The second abutment surface of the drum is an end of a second recess.
In a further aspect, the first and second recesses are portions of circumferential grooves.
In an additional aspect, the first and second recesses are separated by an apex.
In a further aspect, the lever has a first arm and a second arm. The first arm includes the first abutment surface. The second arm includes the second abutment surface.
In an additional aspect, the first arm is longer than the second arm. The first recess is disposed radially inwardly of the second recess.
In another aspect a vehicle transmission is provided. The vehicle transmission comprises an input shaft, and a plurality of input gears disposed on the input shaft. A transmission shaft is disposed parallel to the input shaft, the input shaft selectively driving the transmission shaft. A plurality of transmission gears is disposed on the transmission shaft. Each one of the plurality of transmission gears is engaging a single corresponding one of plurality of the input gears. Each one of the plurality of input gears is engaging a single corresponding one of the plurality of transmission gears. A shift drum shaft is disposed parallel to the transmission shaft. At least one shift drum is disposed on the shift drum shaft. The at least one shift drum is rotatable in a first direction and in a second direction between multiple positions. The at least one shift drum is selectively operatively connected to the plurality of input gears and the plurality of the transmission gears. One of the multiple positions is a neutral shift position. When in the neutral shift position, the at least one shift drum operatively engages none of the plurality of input gears and the plurality of transmission gears, such that the transmission shaft is not driven by the input shaft. When in each one of the multiple positions other than the neutral shift position, the at least one shift drum operatively engages one of the plurality of input gears and a corresponding one the plurality of transmission gears such that the input shaft drives the transmission shaft via the one of plurality of the input gears and the corresponding one of plurality of transmission gears. The multiple positions are operatively engaged to the shift drum in a sequential order in the first direction. The multiple positions are operatively engaged to the shift drum in a reverse sequential order in the second direction. A locking mechanism is selectively preventing the at least one shift drum from rotating. The locking mechanism is movable between a first position and a second position. When in the first position, the locking mechanism prevents the at least one shift drum from rotating in the first direction to engage a first locked position. When in the second position, the locking mechanism prevents the at least one shift drum from rotating in the second direction to engage a second locked position. The second locked position is sequentially prior to the first locked position in the first direction.
In a further aspect, when in the first position, the locking mechanism prevents the at least one shift drum to further engage positions of the multiple positions that are sequentially consecutive to the first locked position in the first direction.
In an additional aspect, when in the second position, the locking mechanism prevents the at least one shift drum to engage positions of the multiple positions that are sequentially consecutive to the second locked position in the second direction.
In a further aspect, the multiple positions are at least first, second, third and fourth positions. The first position corresponds to a reverse shift position. The second position corresponds to a first forward shift position. The third position corresponds to the neutral shift position. The fourth position corresponds to a second forward shift position. The first locked position is the second forward shift position. The second locked position is the reverse shift position.
In an additional aspect, the locking mechanism comprises a drum rotatably disposed on the shift drum shaft, and a lever pivotable between a first and a second position. The lever is selectively abutting the drum for preventing the drum to rotate. When the locking mechanism is the first position, the lever is in the first position and the lever abuts the drum. When the locking mechanism is the second position, the lever is in the second position and the lever abuts the drum.
In a further aspect, the drum is integrally formed with the at least one shift drum.
In an additional aspect, the lever has first and second abutment surfaces. The drum has corresponding first and second abutment surfaces. When the locking mechanism in the first position, the first abutment surface of the lever abuts against the corresponding first abutment surface of the drum when preventing the at least one shift drum from rotating in the first direction to engage the first locked position. When the locking mechanism in the second position, the second abutment surface of the lever abuts against the corresponding second abutment surface of the drum when preventing the at least one shift drum from rotating in the second direction to engage the second locked position.
In a further aspect, the first abutment surface of the drum is an end of a first recess, and the second abutment surface of the drum is an end of a second recess.
In an additional aspect, the lever has a first arm and a second arm. The first arm includes the first abutment surface. The second arm includes the second abutment surface.
In a further aspect, the first arm is longer than the second arm, and the first recess is disposed radially inwardly of the second recess.
Additional and/or alternative features, aspects, and advantages of embodiments of the vehicle transmission will become apparent from the following description, the accompanying drawings, and the appended claims.
For a better understanding of the present invention, as well as other aspects and further features thereof, reference is made to the following description which is to be used in conjunction with the accompanying drawings, where:
The present invention will be described with respect to a three-wheeled vehicle having a handlebar for steering. However it should be understood that the invention could be used in other wheeled vehicles such as, but not limited to, a motorcycle, a scooter, and an all-terrain vehicle (ATV). U.S. Pat. No. 6,732,830, issued May 11, 2004, the entirety of which is incorporated herein by reference, describes the general features of an ATV.
Referring to
The three-wheel vehicle 10 has other features well known in the art. Some of these features can be found in U.S. Pat. No. 6,948,581, issued Sep. 27, 2005, the entirety of which is incorporated herein by reference.
Turning now to
The transmission 100 has a housing 108 (partially shown in
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Four transmission gears 200, 202, 204, 206 are rotatably connected to the transmission shaft 196 each via a bearing 231 (shown in
Referring more specifically to
As mentioned above, the shift drum shaft 138 is rotated to select which input gear and corresponding transmission gear become operatively engaged to each other, and as a result which shift position is engaged. The shift drum shaft 138 has a shift drum 154 splined thereon. As such, the shift drum 154 is rotatably fixed to the shift drum shaft 138 and rotates therewith. The shift drum 154 defines four grooves 156 shaped to affect the desired shift sequence of the vehicle transmission 100 by displacing shift forks. It is contemplated that the shift drum 154 could be four shift drums each having one of the grooves 156. It is also contemplated that the shift drum 154 could have more or less than four grooves 156.
A first fork rod 176 is disposed parallel to the shift drum shaft 138. First and second shift forks 178, 180 are slidably disposed on the first fork rod 176. A second fork rod 186 is disposed parallel to the shift drum shaft 138. A third shift fork (not shown) and a fourth shift fork 188 are slidably disposed on the second fork rod 186. The first and second shift forks 178, 180 have pins (not shown) received in the grooves 156 of the shift drum 154 such that when the shift drum 154 rotates by the rotation of the shift drum shaft 138, the pins follow the grooves 156 and cause the shift forks 178, 180 to slide along the first fork rod 176. Similarly, the third shift fork and the fourth shift fork 188 have pins (not shown) received in the grooves 156 of the shift drum 154 such that when the shift drum 154 rotates by the rotation of the shift drum shaft 138, the pins follow the grooves 156 and cause the third shift fork and the fourth shift fork 188 to slide along the second fork rod 186. The pins have a shape corresponding to the one of the grooves 156. It is contemplated that only one or more than two shift rods 176, 186 could be used, and that each fork rod 176, 186 could have only one or more than two shift forks.
As best seen in
Still referring to
The transmission 100 has other features well known in the art. The transmission 100 is only one example of transmission for the three-wheel vehicle 10.
The transmission 100 includes a gear locking mechanism 300. The gear locking mechanism 300 is movable between a first position and a second position. In the first position, the transmission 100 is prevented from shifting between the neutral 70 and second 72 shift positions, and in the second position the transmission 100 is prevented from shifting to the reverse shift position 69.
Referring more specifically to
The gear locking shaft 312 (and hence the lock lever 310) is operatively rotatable between the first position and the second position via a mechanical system 370 (shown schematically). The mechanical mechanism 370 is connected to the gear locking shaft 312 via arm 313. A pull wire (not shown) connects the arm 313 to a solenoid (not shown) actuated electrically by the gear locking button 103. It is contemplated that the system 370 could be other than electrical. For example, the system 370 could be hydraulic, mechanical, electronical or a combination of the above. By default, the gear locking button 103 is not pressed, the gear locking mechanism 300 is actuated, and the lock lever 310 is in the second position. When the gear locking button 103 is pressed, the gear locking mechanism 300 becomes deactuated, and the gear locking shaft 312 is rotated to move the lock lever 310 in the first position so as to release the reverse shift position 69 and to lock the second shift position 72, as will be described below. It is contemplated that the first position could be the default position of the gear locking mechanism 300. It is contemplated that the gear locking button 103 could have two actuated positions, each corresponding to one of the first and second positions. It is also contemplated that a third position (being neither the first nor the second position) could be the default position. It is also contemplated that the actuation of the gear locking button 103 could be done automatically by a vehicle control system, based on driving conditions. It is also contemplated that the actuation of the lock lever 310 could be done automatically by a vehicle control system, based on driving conditions, and as such the gear locking button 103 could be omitted. The first and second positions will be described in detail below.
A return spring 314 is disposed around the gear locking shaft 312. The spring 314 is used to return locking mechanism 300 into the default position. It is contemplated that the spring 314 could be omitted.
The drum 320 is integrally formed with the shift drum 154 at one end thereof. The drum 320 is sequentially rotatable between the eight gear shift positions in the upshift direction 350 and the same eight gears in the downshift direction 351. The drum 320 is generally circular and is of a smaller diameter than the shift drum 154. It is contemplated that the drum 320 could have the same or a bigger diameter than the shift drum 154. It is also contemplated that the drum 320 could be not integrally formed with or adjacent to the shift drum 154. It is contemplated that the drum 320 could be disposed between the grooves 156 of the shift drum 154. It is also contemplated that the drum 320 could be disposed at the other end of the shift drum 154. The drum 320 has a circumferential groove 329 defined therein. The groove 329 has a variable depth (depth being computed with respect to a center of the drum 320) and a constant width (width being computed with respect to a longitudinal direction of the shift drum shaft 138). It is contemplated that the groove 329 could have a constant depth and a variable width. It is contemplated that the drum 320 could be omitted. For example, the shift drum shaft 138 could be designed to cooperate with the lock lever 310. The shift drum shaft 138 could have grooves, projections or recesses to selectively mate with the lock lever 310. It should be understood that the groove 329 is only one of the embodiments that would allow the drum 320 to cooperate with the lock lever 310. For example, the groove 329 could be replaced by projections mating with other projections or recesses in the lock lever 310.
The lock lever 310 is generally flat and has first and second arms 318, 316. The first arm 318 is longer than the second arm 316. A connection between the first and second arms 318, 316 forms a “U”. It is contemplated that the arms 316, 318 could have the same length, and that the connection between the first and second arms 318, 316 could be of a shape different from a “U”. The first arm 318 and the second arm 316 are selectively abutting a first abutment surface 324 and a second abutment surface 322 (shown in
As best seen in
An apex 334 separates another end of the second groove portion 330 from the second abutment surface 322. As seen from a right side, the apex 334 and the second abutment surface 322 define an indentation 332. As best seen in
The gear locking mechanism 300 functions as follows. As mentioned above, by default, the gear locking mechanism 300 is actuated and the lock lever 310 is in the second position. When the lock lever 310 is in the second position (shown in
When the operator presses on the gear locking button 103, the gear locking mechanism 300 becomes deactivated. The lock lever 310 moves to the first position. It is now possible to downshift from the first shift position 71 to the reverse shift position 69, but the gear locking mechanism 300 now prevents from shifting from the neutral shift position 70 to the second shift position 72. When the lock lever 310 is in the first position (shown in
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Modifications and improvements to the above-described embodiments of the present invention may become apparent to those skilled in the art. The foregoing description is intended to be exemplary rather than limiting. The scope of the present invention is therefore intended to be limited solely by the scope of the appended claims.
Claims
1. A vehicle transmission comprising:
- an input shaft;
- first, second and third input gears disposed on the input shaft;
- an idler gear engaging the first input gear;
- a transmission shaft disposed parallel to the input shaft, the input shaft selectively driving the transmission shaft;
- first, second, and third transmission gears disposed on the transmission shaft, the first transmission gear engaging the idler gear, the second transmission gear engaging the second input gear, the third transmission gear engaging the third input gear;
- a shift drum shaft disposed parallel to the transmission shaft;
- at least one shift drum disposed on the shift drum shaft, the at least one shift drum being selectively operatively connected to the first, second, and third input gears and the first, second and third transmission gears,
- the at least one shift drum being rotatable: sequentially between a reverse shift position, a first forward shift position, a neutral shift position, and a second forward shift position in a first direction, and sequentially between the second forward shift position, the neutral shift position, the first forward shift position, and the reverse shift position in a second direction,
- when in the reverse shift position, the at least one shift drum operatively engages one of the first input gear and the first transmission gear such that the input shaft drives the transmission shaft via the first input gear, the first transmission gear and the idler gear,
- when in the first forward shift position, the at least one shift drum operatively engages one of the second input gear and the second transmission gear such that the input shaft drives the transmission shaft via the second input gear and the second transmission gear
- when in the neutral shift position, the at least one shift drum operatively engages none of the first, second, and third input gears, and the first, second and third transmission gears, such that the transmission shaft is not driven by the input shaft, and
- when in the second forward shift position, the at least one shift drum operatively engages the third input gear and the third transmission gear such that the input shaft drives the transmission shaft via the third input gear and the third transmission gear; and
- a locking mechanism selectively preventing the at least one shift drum from rotating, the locking mechanism being movable between a first position and a second position, the locking mechanism being normally biased toward the second position,
- when in the first position, the locking mechanism prevents the at least one shift drum from rotating in the first direction between the neutral shift position and the second forward shift position, and permits rotation of the at least one shift drum sequentially between the neutral shift position and the reverse shift position,
- when in the second position, the locking mechanism prevents the at least one shift drum from rotating in the second direction between the first forward shift position and the reverse shift position, and permits rotation of the at least one shift drum sequentially between the first forward shift position and the second forward shift position.
2. The vehicle transmission of claim 1, wherein the locking mechanism comprises:
- a drum rotatably disposed on the shift drum shaft; and
- a lever pivotable between a first and a second position, the lever selectively abutting the drum for preventing the drum to rotate,
- when the locking mechanism is in the first position, the lever is in the first position and the lever abuts the drum, and
- when the locking mechanism is in the second position, the lever is in the second position and the lever abuts the drum.
3. The vehicle transmission of claim 2, wherein the drum is integrally formed with the at least one shift drum.
4. The vehicle transmission of claim 2, wherein:
- the lever has first and second abutment surfaces,
- the drum has corresponding first and second abutment surfaces,
- when the locking mechanism is in the first position, the first abutment surface of the lever abuts against the corresponding first abutment surface of the drum when preventing the at least one shift drum from rotating in the first direction to engage the first locked position, and
- when the locking mechanism is in the second position, the second abutment surface of the lever abuts against the corresponding second abutment surface of the drum when preventing the at least one shift drum from rotating in the second direction to engage the second locked position.
5. The vehicle transmission of claim 4, wherein the first abutment surface of the drum is an end of a first recess, and the second abutment surface of the drum is an end of a second recess.
6. The vehicle transmission of claim 5, wherein the first and second recesses are portions of circumferential grooves.
7. The vehicle transmission of claim 5, wherein the first and second recesses are separated by an apex.
8. The vehicle transmission of claim 5, wherein:
- the lever has a first arm and a second arm,
- the first arm includes the first abutment surface of the lever, and
- the second arm includes the second abutment surface of the lever.
9. The vehicle transmission of claim 8, wherein the first arm is longer than the second arm, and the first recess is disposed radially inwardly of the second recess with respect to the drum.
Type: Grant
Filed: Sep 30, 2010
Date of Patent: May 14, 2013
Patent Publication Number: 20120079906
Assignee: BRP-Powertrain GmbH & Co. KG (Gunskirchen)
Inventors: Johann Wilflinger (Linz), Patrick Raffelsberger (Hofkirchen Im Traunkreis), Robert Wagner (Thalheim Bei Wels), Andre Gilbert (Sherbrooke), Jean-Philippe Houle (Sherbrooke)
Primary Examiner: Troy Chambers
Assistant Examiner: Jake Cook
Application Number: 12/894,265
International Classification: F16H 59/00 (20060101); F16H 61/00 (20060101); F16H 63/00 (20060101); B60K 20/00 (20060101); G05G 5/08 (20060101);